Please use this identifier to cite or link to this item: http://hdl.handle.net/1942/33005
Title: Serial correlation structures in latent linear mixed models for analysis of multivariate longitudinal ordinal responses
Authors: DUNG, Tran 
LESAFFRE, Emmanuel 
VERBEKE, Geert 
MOLENBERGHS, Geert 
Issue Date: 2021
Publisher: WILEY
Source: STATISTICS IN MEDICINE, 40(3), p. 578-592
Abstract: We propose a latent linear mixed model to analyze multivariate longitudinal data of multiple ordinal variables, which are manifestations of fewer continuous latent variables. We focus on the latent level where the effects of observed covariates on the latent variables are of interest. We incorporate serial correlation into the variance component rather than assuming independent residuals. We show that misleading inference may be drawn when misspecifying the variance component. Furthermore, we provide a graphical tool depicting latent empirical semi-variograms to detect serial correlation for latent stationary linear mixed models. We apply our proposed model to examine the treatment effect on patients having the amyotrophic lateral sclerosis disease. The result shows that the treatment can slow down progression of latent cervical and lumbar functions.
Notes: Tran, TD (corresponding author), I BioStat, Kapucijnenvoer 35 Blok Bus 7001, B-3000 Leuven, Belgium.
trungdung.tran@kuleuven.be
Other: Tran, TD (corresponding author), I BioStat, Kapucijnenvoer 35 Blok Bus 7001, B-3000 Leuven, Belgium. trungdung.tran@kuleuven.be The data can be accessed upon request at https://nctu.partners.org/ProACT/
Keywords: ALS;latent linear mixed model;Ornstein‐Uhlenbeck;serial correlation
Document URI: http://hdl.handle.net/1942/33005
ISSN: 0277-6715
e-ISSN: 1097-0258
DOI: 10.1002/sim.8790
ISI #: WOS:000585880900001
Rights: 2020 John Wiley & Sons, Ltd.
Category: A1
Type: Journal Contribution
Validations: ecoom 2021
Appears in Collections:Research publications

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